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Statistical Combination of Spatial Interpolation and Multispectral Remote Sensing for Shallow Water Bathymetry

机译:空间插值与多光谱遥感的统计结合浅水测深

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摘要

There is often a need for making a high-resolution or a complete bathymetric map based on sparse point measurements of water depth. Well-known feasible methods for this problem include spatial interpolation and passive remote sensing using readily available multispectral imagery, whose accuracies depend strongly on geometric and optical conditions, respectively. For a more accurate and robust water-depth mapping, in this letter, the two methods are combined into a new method in a statistically reasonable and beneficial manner. The new method is based on a semiparametric regression model that consists of a parametric imagery-based term and a nonparametric spatial interpolation term that complement one another. An accuracy comparison in a test site shows that the new method is more accurate than either of the existing methods when sufficient training data are available and far more accurate than the spatial interpolation method when the training data are scarce.
机译:通常需要基于水深的稀疏点测量来制作高分辨率或完整的测深图。解决此问题的众所周知的可行方法包括使用容易获得的多光谱图像进行空间插值和被动遥感,其精确度分别强烈取决于几何和光学条件。为了更准确,更可靠地绘制水深,本文将这两种方法以统计上合理且有益的方式组合为一种新方法。新方法基于半参数回归模型,该模型由相辅相成的基于参数图像的项和非参数空间插值项组成。在测试站点中进行的准确性比较显示,当有足够的训练数据时,新方法比任何一种现有方法都更准确,而当训练数据不足时,新方法比空间插值方法更准确。

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